(a) Problem-solving and application

Syllabus
2024
Topic
Level

Turn a practical context into a solvable problem

Solving a practical problem means extracting the relevant variables and evidence, choosing a valid comparison or relationship, and producing an answer with units and a context check.

Move What to do
1 state the target identify exactly what must be found: difference, rate, percentage, optimum or predicted outcome
2 map the variables identify the changed condition and the measured response; ignore details that do not affect the target
3 align the evidence compare like with like—same time, unit, sample basis or body-mass basis
4 choose an operation difference = final − initial; rate = change ÷ time; percentage change = change ÷ original × 100
5 calculate transparently show selected values, substitution, arithmetic and units
6 check the context confirm sign, size and unit are biologically plausible and answer the stated target

In a seedling table at day 20, dry mass is 8.5 g with fertiliser and 6.8 g without it. The matched difference is 1.7 g; relative to the no-fertiliser value, the increase is 1.7 ÷ 6.8 × 100 = 25%.

Do not compare unmatched days or switch denominators silently. A numerical pattern is an answer to the calculation; explaining why it occurs requires relevant biological knowledge and belongs to the next reasoning step.

Apply biological knowledge to a practical observation

Applying knowledge in a practical context means selecting the biological principle that controls the measured outcome and building an explicit causal link from condition to observation.

Reasoning move Example of a complete link
identify the observation fertilised seedlings have greater dry mass at the same time
select relevant biology nitrate supports amino-acid and protein synthesis; magnesium supports chlorophyll
connect mechanism to measurement mineral supply can increase growth and photosynthesis, producing more biomass and therefore greater dry mass
respect measurement choice dry mass excludes variable water content, so it better represents accumulated biological material
transfer to another context a mouse has a larger surface-area-to-volume ratio than a human, loses heat faster per gram and needs a higher respiration rate per gram to maintain temperature

A strong explanation has the form condition → biological process → effect on the measured variable. Use the context's scale and units: total oxygen use and oxygen use per gram answer different questions.

Naming a topic is not application. 'Fertiliser helps growth' or 'surface area matters' is incomplete until the mechanism is connected to the actual result, measurement basis and direction of change.